Departments of Molecular Biology and Plant Biology, University of Geneva, 1211 Geneva, Switzerland
Department of Biotechnology, University of Verona, 37134 Verona, Italy.
Biochem J. 2019 Feb 14;476(3):581-593. doi: 10.1042/BCJ20180718.
LHC (light-harvesting complex) proteins of plants and algae are known to be involved both in collecting light energy for driving the primary photochemical reactions of photosynthesis and in photoprotection when the absorbed light energy exceeds the capacity of the photosynthetic apparatus. These proteins usually contain three transmembrane (TM) helices which span the thylakoid membranes and bind several chlorophyll, carotenoid and lipid molecules. In addition, the LHC protein family includes LHC-like proteins containing one, two, three or even four TM domains. One-helix proteins are not only present in eukaryotic photosynthetic organisms but also in cyanobacteria where they have been named high light-inducible proteins. These small proteins are probably the ancestors of the members of the extant LHC protein family which arouse through gene duplications, deletions and fusions. During evolution, some of these proteins have diverged and acquired novel functions. In most cases, LHC-like proteins are induced in response to various stress conditions including high light, high salinity, elevated temperature and nutrient limitation. Many of these proteins play key roles in photoprotection, notably in non-photochemical quenching of absorbed light energy. Moreover, some of these proteins appear to be involved in the regulation of chlorophyll synthesis and in the assembly and repair of Photosystem II and also of Photosystem I possibly by mediating the insertion of newly synthesized pigments into the photosynthetic reaction centers.
植物和藻类的 LHC(光捕获复合物)蛋白已知既参与收集用于驱动光合作用的初级光化学反应的光能,也参与当吸收的光能超过光合作用装置的容量时的光保护。这些蛋白质通常含有三个跨膜(TM)螺旋,跨越类囊体膜并结合几个叶绿素、类胡萝卜素和脂质分子。此外,LHC 蛋白家族还包括含有一个、两个、三个甚至四个 TM 结构域的 LHC 样蛋白。一螺旋蛋白不仅存在于真核光合生物中,也存在于蓝细菌中,在那里它们被称为高光诱导蛋白。这些小蛋白可能是现存 LHC 蛋白家族成员的祖先,它们通过基因重复、缺失和融合产生。在进化过程中,其中一些蛋白质发生了分化并获得了新的功能。在大多数情况下,LHC 样蛋白会响应各种胁迫条件而被诱导,包括高光、高盐、高温和营养限制。这些蛋白中的许多在光保护中起着关键作用,特别是在吸收光能的非光化学猝灭中。此外,其中一些蛋白似乎参与叶绿素合成的调节,以及 PSII 和 PSI 的组装和修复,可能通过介导新合成的色素插入光合作用反应中心来实现。